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Low-Tortuosity Water Microchannels Boosting Energy Utilization for High Water Flux Solar Distillation

机译:低曲折水微通道促进高水通量太阳能蒸馏的能量利用

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摘要

Solar distillation through photothermal evaporators has approached solar light energy (E_1) limit under no solar concentration but still suffers from modest vapor and clean water production. Herein, a nature-inspired low-tortuosity three-dimensional (3D) evaporator is demonstrated to significantly improve water production. The solar evaporator, prepared from poly-pyrrole-modified maize straw (PMS), had upright vascular structures enabling high water lifting and horizontal microgaps facilitating broad water distribution to the out-surface. Consequently, this novel PMS evaporator dramatically enhanced the utilization of the solar heat energy stored in the environment (E_2) for promoting evaporation. The maximum vapor generation rate of a single PMS respectively increases 2.5 and 6 times compared with the conventional 3D evaporators and the planar evaporators of an identical occupied area. Consequently, a scaled-up PMS array achieved a state-of-the-art vapor generation rate of 3.0 L m~(-2) h~(-1) (LMH) under a simulated condition and a record-high clean water production of 2.2 LMH for actual seawater desalination under natural conditions (1 sun intensity). This breakthrough reveals great potentials for cost-effective freshwater production as well as the rational design of high-performance photothermal evaporators for solar distillation.
机译:在没有阳光集中的情况下,通过光热蒸发器进行的太阳能蒸馏已达到太阳光能(E_1)的极限,但仍会产生少量的蒸气和清洁水。在这里,自然启发的低曲率三维(3D)蒸发器被证明可以显着提高产水量。由聚吡咯改性的玉米秸秆(PMS)制成的太阳能蒸发器具有直立的维管结构,能够实现高水位提升和水平的微间隙,从而有利于水向表层的广泛分布。因此,这种新颖的PMS蒸发器极大地提高了存储在环境(E_2)中的太阳能的利用率,以促进蒸发。与传统的3D蒸发器和相同的占地面积的平面蒸发器相比,单个PMS的最大蒸汽产生率分别增加了2.5倍和6倍。因此,按比例放大的PMS阵列在模拟条件下实现了3.0 L m〜(-2)h〜(-1)(LMH)的最新蒸汽产生速率,并创造了创纪录的高净水产量在自然条件下(1太阳强度)进行实际海水淡化的2.2 LMH值。这一突破揭示了具有成本效益的淡水生产的巨大潜力,以及合理设计用于太阳能蒸馏的高性能光热蒸发器的潜力。

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  • 来源
    《Environmental Science & Technology》 |2020年第8期|5150-5158|共9页
  • 作者单位

    State Key Laboratory of Urban Water Resource and Environment School of Environment Harbin Institute of Technology Harbin 150090 China;

    Department of Civil Engineering The University of Hong Kong Pokfulam HW619B Hong Kong China;

    College of Urban Construction and Environmental Engineering Chongqing University Chongqing 400000 China;

    MOE Key Laboratory of Bioorganic Phosphorus Chemistry & Chemical Biology Department of Chemistry Tsinghua University Beijing 100084 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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